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室温下使用 FePt-NDs 的纳米自旋二极管,具有巨大的通断电流比。

Nano spin-diodes using FePt-NDs with huge on/off current ratio at room temperature.

机构信息

Graduate School of Engineering, Nagoya University, Aichi, Japan.

Department of Physics, Institut Teknologi Bandung, Bandung, Indonesia.

出版信息

Sci Rep. 2016 Sep 12;6:33409. doi: 10.1038/srep33409.

Abstract

Spin transistors have attracted tremendous interest as new functional devices. However, few studies have investigated enhancements of the ON/OFF current ratio as a function of the electron spin behavior. Here, we found a significantly high spin-dependent current ratio-more than 10(2) at 1.5 V-when changing the relative direction of the magnetizations between FePt nanodots (NDs) and the CoPtCr-coated atomic force microscope (AFM) probe at room temperature. This means that ON and OFF states were achieved by switching the magnetization of the FePt NDs, which can be regarded as spin-diodes. The FePt magnetic NDs were fabricated by exposing a bi-layer metal stack to a remote H2 plasma (H2-RP) on ~1.7 nm SiO2/Si(100) substrates. The ultrathin bi-layers with a uniform surface coverage are changed drastically to NDs with an areal density as high as ~5 × 10(11) cm(-2). The FePt NDs exhibit a large perpendicular anisotropy with an out-of-plane coercivity of ~4.8 kOe, reflecting the magneto-crystalline anisotropy of (001) oriented L10 phase FePt. We also designed and fabricated double-stacked FePt-NDs with low and high coercivities sandwiched between an ultra-thin Si-oxide interlayer, and confirmed a high ON/OFF current ratio when switching the relative magnetization directions of the low and high coercivity FePt NDs.

摘要

自旋晶体管作为新型功能器件吸引了极大的关注。然而,很少有研究探讨电子自旋行为作为函数的导通/截止电流比的增强。在这里,我们发现了一个非常高的自旋相关电流比-超过 10(2)在 1.5V-当改变室温下 FePt 纳米点(NDs)和 CoPtCr 涂层原子力显微镜(AFM)探针之间的磁化方向的相对方向。这意味着导通和截止状态是通过切换 FePt NDs 的磁化来实现的,这可以被视为自旋二极管。FePt 磁性 NDs 通过将双层金属堆叠暴露于远程 H2 等离子体(H2-RP)在1.7nm SiO2/Si(100)衬底上制造。具有均匀表面覆盖率的超薄双层结构急剧转变为具有高达5×10(11)cm-2的面密度的 NDs。FePt NDs 表现出大的垂直各向异性,具有高达~4.8kOe 的面外矫顽力,反映了(001)取向 L10 相 FePt 的磁晶各向异性。我们还设计和制造了双堆叠的 FePt-NDs,低矫顽力和高矫顽力的 FePt-NDs 夹在超薄的 Si-氧化物中间层之间,并证实了当切换低矫顽力和高矫顽力 FePt NDs 的相对磁化方向时具有高导通/截止电流比。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6f1/5018842/de648895f9b6/srep33409-f1.jpg

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